Fused Deposition Modelling-based 3D Printing: A Systematic Literature Review Employing VOS Viewer

Open Access

Year : 2024 | Volume :11 | Special Issue : 12 | Page : 197-202
By

    Manohar Singh

  1. Manoj Kumar Lohumi

  2. Brijesh Singh

  3. Pushpendra S. Bharti

  1. Associate Professor, algotias College of Engineering and Technology, Uttar Pradesh, India
  2. Professor, algotias College of Engineering and Technology, Uttar Pradesh, India
  3. Director, MIET, Uttar Pradesh, India
  4. Professor, U.S.I.C.T., Guru Gobind Singh Indraprastha University, Delhi, India

Abstract

Fused Deposition Modelling, also known as FDM, has emerged as a major technology in the field of 3D printing. It provides adaptability and cost-effectiveness in the process of materializing intricate designs. This paper intends to conduct a complete bibliometric analysis (BA) of 3D printing based on fused deposition modelling (FDM) in order to comprehend the trend and research field. After extracting data from the Scopus database using the titles, abstracts, and keywords, the documents have been taken into consideration for evaluation. Vos Viewer software has been used for construction and visualization of networks. The obtained network has been analyzed to find out the trending areas in the field of 3D printing, based upon the co-occurrence of keywords. VOSviewer software has been used for co-occurance analysis using bibliographic data obtained from the Scopus database. The co-occurrence analysis helped to identify keywords widely used by researchers in 3D printing. It has been found that because of its superior strength, polylactic acid (PLA) is the filament material that is used the most frequently, and fused deposition modelling (FDM) is the most popular method for 3D printing. The mechanical properties of 3D printed samples, studied by most of the researchers have been identified mainly as the tensile test, the flexural test, the compressive test, the bending test, and the wear test.

Keywords: Systematic Literature Review (SLR), Fused deposition modeling (FDM), 3D Printing, Additive Manufacturing, Rapid Prototyping.

[This article belongs to Special Issue under section in Journal of Polymer and Composites(jopc)]

How to cite this article: Manohar Singh, Manoj Kumar Lohumi, Brijesh Singh, Pushpendra S. Bharti , Fused Deposition Modelling-based 3D Printing: A Systematic Literature Review Employing VOS Viewer jopc 2024; 11:197-202
How to cite this URL: Manohar Singh, Manoj Kumar Lohumi, Brijesh Singh, Pushpendra S. Bharti , Fused Deposition Modelling-based 3D Printing: A Systematic Literature Review Employing VOS Viewer jopc 2024 {cited 2024 Mar 29};11:197-202. Available from: https://journals.stmjournals.com/jopc/article=2024/view=136679

Full Text PDF Download

References

  1. S. Scott Crump. APPARATUS AND METHOD FOR CREATING THREE-DIMENSIONAL OBJECTS. Bunseki Kagaku. 1992.
  2. Hanon MM, Kovács M, Zsidai L. Tribology behaviour investigation of 3D printed polymers. Int Rev Appl Sci Eng. 2019;10(2):173–81.
  3. Aria M, Cuccurullo C. bibliometrix: An R-tool for comprehensive science mapping analysis. J Informetr [Internet]. 2017;11(4):959–75. Available from: http://dx.doi.org/10.1016/j.joi.
    2017.08.007
  4. van Eck NJ, Waltman L. Software survey: VOSviewer, a computer program for bibliometric mapping. Scientometrics. 2010;84(2):523–38.
  5. Singh S, Singh G, Prakash C, Ramakrishna S, Lamberti L, Pruncu CI. 3D printed biodegradable composites: An insight into mechanical properties of PLA/chitosan scaffold. Polym Test. 2020;89.
  6. Chacón JM, Caminero MA, García-Plaza E, Núñez PJ. Additive manufacturing of PLA structures using fused deposition modelling: Effect of process parameters on mechanical properties and their optimal selection. Mater Des. 2017;124:143–57.
  7. Akessa AD, Lemu HG, Gebisa AW. Mechanical property characterization of additive manufactured ABS material using design of experiment approach. In: ASME International Mechanical Engineering Congress and Exposition, Proceedings (IMECE). 2017.
  8. Maloch J, Hnátková E, Žaludek M, Krátký P. Effect of processing parameters on mechanical properties of 3D printed samples. Mater Sci Forum. 2018;919:230–5.
  9. Carneiro OS, Silva AF, Gomes R. Fused deposition modeling with polypropylene. Mater Des [Internet]. 2015;83:768–76. Available from: http://dx.doi.org/10.1016/j.matdes.2015.06.053
  10. Parandoush P, Lin D. A review on additive manufacturing of polymer-fiber composites. Compos Struct [Internet]. 2017;182:36–53. Available from: https://doi.org/10.1016/j.compstruct.
    2017.08.088
  11. Hebda M, McIlroy C, Whiteside B, Caton-Rose F, Coates P. A method for predicting geometric characteristics of polymer deposition during fused-filament-fabrication. Addit Manuf [Internet]. 2019;27(February):99–108. Available from: https://doi.org/10.1016/j.addma.2019.02.013
  12. Singh S, Singh G, Prakash C, Ramakrishna S, Lamberti L, Pruncu CI. 3D printed biodegradable composites: An insight into mechanical properties of PLA/chitosan scaffold. Polym Test [Internet]. 2020;89:106722. Available from: https://doi.org/10.1016/j.polymertesting.
    2020.106722
  13. Norani MNM, Abdollah MF Bin, Abdullah MIHC, Amiruddin H, Ramli FR, Tamaldin N. 3D printing parameters of acrylonitrile butadiene styrene polymer for friction and wear analysis using response surface methodology. Proc Inst Mech Eng Part J J Eng Tribol [Internet]. 2020;135065012092560. Available from: https://doi.org/10.1177/1350650120925601
  14. Srinivasan R, Suresh Babu B, Udhaya Rani V, Suganthi M, Dheenasagar R. Comparision of tribological behaviour for parts fabricated through fused deposition modelling (FDM) process on abs and 20% carbon fibre PLA. Mater Today Proc. 2020;(xxxx).
  15. S. Alsoufi M, W. Alhazmi M, K. Suker D, A. Alghamdi T, A. Sabbagh R, A. Felemban M, et al. Experimental Characterization of the Influence of Nozzle Temperature in FDM 3D Printed Pure PLA and Advanced PLA+. Am J Mech Eng. 2019;7(2):45–60.
  16. Herlambang YD, Semarang PN, Arifin F, Polytechnic SS. Optimization of Process Parameters in 3D Printing Fdm By Using Optimization of Process Parameters in 3D Printing Fdm By Using the Taguchi and Grey Relational Analysis. 2021;(June):1–10.
  17. Singh M, Bharti PS. Parametric Influence of Process Parameters on the Wear Rate of 3D Printed Polylactic Acid Specimens. Indian J Pure Appl Phys. 2021;59(03):244–51.
  18. Singh M, Bharti PS. Grey relational analysis based optimization of process parameters for efficient performance of fused deposition modelling based 3D printer. J Eng Res. 2022;(ICMET Special Issue):1–15.

Special Issue Open Access Original Research
Volume 11
Special Issue 12
Received December 14, 2023
Accepted January 25, 2024
Published March 29, 2024